Movatterモバイル変換


[0]ホーム

URL:


US5847853A - Modulation and demodulation of light to facilitate transmission of information - Google Patents

Modulation and demodulation of light to facilitate transmission of information
Download PDF

Info

Publication number
US5847853A
US5847853AUS08/580,630US58063095AUS5847853AUS 5847853 AUS5847853 AUS 5847853AUS 58063095 AUS58063095 AUS 58063095AUS 5847853 AUS5847853 AUS 5847853A
Authority
US
United States
Prior art keywords
light signal
light
mixed
component
signal
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US08/580,630
Inventor
Warren M. Farnworth
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Micron Technology Inc
Original Assignee
Micron Technology Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Micron Technology IncfiledCriticalMicron Technology Inc
Priority to US08/580,630priorityCriticalpatent/US5847853A/en
Assigned to MICRON TECHNOLOGY, INC.reassignmentMICRON TECHNOLOGY, INC.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: FARNWORTH, WARREN M.
Priority to US09/107,668prioritypatent/US6304355B1/en
Application grantedgrantedCritical
Publication of US5847853ApublicationCriticalpatent/US5847853A/en
Anticipated expirationlegal-statusCritical
Expired - Lifetimelegal-statusCriticalCurrent

Links

Images

Classifications

Definitions

Landscapes

Abstract

A communication system including a light modulator system includes a laser that produces a high frequency carrier wave signal and a laser information signal source that produces a much lower frequency information signal. The carrier wave signal passes through a first pinhole in a screen to a light mixer cavity. The information signal passes through a second pinhole in the screen to the light mixer cavity, the signals being mixed in the light mixer cavity after passing through their respective pinholes. The resulting signal components include a sum of the carrier wave signal and the information wave signal. A pickup fibre is positioned and sized to receive and transmit only the sum of the carrier wave signal and the information wave signal. The pickup fibre is connected to the local end of a fibre optic cable. A light demodulator system at the remote end of the fibre optic cable includes a laser that produces a remote carrier wave signal that is mixed in another, similar light mixer cavity with the output of the fibre optic cable. The light signal components resulting from the mixing of the remote carrier wave signal and the fibre optic cable output signal are received by a light sensitive detector plate, which electronically outputs the components to a detector which is sensitive to the difference frequency between the remote carrier wave signal and the sum signal, to recover the information representative of the laser information signal.

Description

BACKGROUND OF THE INVENTION
1. Field of the Invention
The invention relates to a system and method for modulating a combined light information signal and light carrier wave signal for transmission through an optical transmission link and demodulating the combined signal after reception to extract the transmitted information. More particularly, the invention relates to such a system and method of extremely simple and robust construction and which allow use of commercially available lasers and low frequency switching electronics for conversion of electronic domain information input signals to light signals and for retrieval of information from the light signals with reconversion to the electronic domain.
2. State of the Art
Optical communication systems allow information to be transmitted in the form of light. Fibre optic cables may be used to transmit the information from a transmitter to a receiver. Fibre optic cables can transmit light at extremely high speed and with relatively small power loss.
Referring to FIG. 1, a typical fibre optical cable consists of anoptical core 14 surrounded by anoptical cladding 16. The light is transmitted throughcore 14. As used herein, "light" refers to electromagnetic radiation that may be effectively transmitted through fibre optic cable and associated components, or other optic transmission systems known or contemplated in the art.
All materials that allow the transmission of electromagnetic radiation including light have an associated refractive index n, which is the ratio of the speed of light in a vacuum to the speed of light in the material. The speed of light in a vacuum is normalized to 1. The speed of light in a vacuum is constant regardless of the wavelength of the light. By contrast, the speed of light in a material is a function of wavelength and the structure of the material. Accordingly, the refractive index is a function of the wavelength of the light and the structure of the material.
Refraction refers to bending of light due to variations in the refractive index. As a ray of light passes from one material (or a vacuum) to another material, it is possible for the ray to refract, reflect, or partially refract and partially reflect. (The ray may also be partially absorbed.) Refracted rays are sometimes called transmitted rays, which term will be used herein to avoid confusion of subscripts.
The following three laws govern the relationship between incident, reflected, and transmitted (refracted) rays. First, the incident, reflected, and transmitted rays all reside in a plane, known as the plane of incidence, which is normal to the interface of the materials. Second, the angle of incidence θI equals the angle of reflection θR, where each angle is measured with respect to a line normal to the interface. Third, the angle of incidence θI and the angle of transmittance θT are related by Snell's law shown in equation (1), below:
n.sub.I sin θ.sub.I =n.sub.T sin θ.sub.T       ( 1),
where n, is the refractive index of the material through which the incident ray travels, nT is the refractive index of the material through which the transmitted ray travels, θI is the angle of the incident ray with respect to the normal, and θT is the angle of the transmitted ray with respect to the normal.
An example of refraction is shown in FIGS. 2A and 2B. Referring to FIGS. 2A and 2B, a ray travels from Material A, having refractive index nI, to Material B, having a refractive index nT. The ratio of the angle of incidence θI to the angle of transmittance θT is governed by Snell's law, shown in equation (1). Generally, where nT >nI (as in FIG. 2A), θTI. Where nT <nI (as in FIG. 2B), θTI. (Of course, a larger θI also results in a larger θT.) At θT =90°, θI is defined to be at critical angle, denoted θC. The critical angle θC is defined in equation (2), below:
θ.sub.C =sin.sup.-1 (n.sub.T /n.sub.I)               (2).
For θIC, all of the incident ray is totally internally reflected, remaining in the incident medium. An ideal fibre optic cable has total internal reflection, which leads to a relatively small amount of loss in the transmission of light through the cable.
Referring to FIG. 3, one end of fibreoptic cable 10 interfaces with air, which has a refractive index n1 (which happens to be about 1.00027). Core 14 has a refractive index n2, where n2 >n1. Cladding 16 has a refractive index n3. Dashed lines show the normal with respect to the air-core interface and the core-cladding interface. An incident ray hits the air-core interface at angle θI1. The transmitted (refracted) ray is referred to as ray TI to designate the ray as both a transmitted ray with respect to the air-core interface and an incident ray with respect to the core-cladding interface. The angle of transmittance θT may be derived according to Snell's law, shown in equation (1).
An angle of incidence θI2 insidecore 14 equals 90° minus θT. If θIC, there will be total internal reflection and ray TI will continue to transmit throughcore 14 at angle θI2 until another interface is reached. Further, there is no loss of radiated power at the reflection (although there is loss as the light passes through core 14).
If θI is too large, θI2 cannot be greater than θC, and there will not be total internal reflection. The maximum incident angle θMAX is derived in equation (3), below:
θ.sub.MAX =sin.sup.-1 ((1/n.sub.1) (n.sub.2.sup.2 -n.sub.3.sup.2).sup.1/2)                                  (3),
where n1, n2, and n3 are the refractive indices defined above in connection with FIG. 3. Accordingly, if θIMAX, there will not be total internal reflection.
Interference refers to the consequence which arises when two light waves starting from the same point source or from two identical point sources arrive at some point P after having travelled two trajectories with different lengths. Generally, the two light waves have the same frequency, but different phases at the time they reach point P. However, the inventor has discovered that it is possible to employ the interference phenomenon with laser light waves of different frequencies and from different sources, as the description of the present invention will hereinafter show.
Modulation is used to impress information from one signal into another signal to create a modulated signal. There are various types of modulation, including amplitude modulation and frequency modulation.
Amplitude modulation is a method of transmitting an information signal by superimposing it on a carrier signal which has a much higher frequency. Consider the following simple example. A carrier signal cos ωC t is varied in amplitude by a modulating information signal cos ωM t, where ωM is much less than ωC. The resulting modulated signal IMod is shown in equation (4), below:
I.sub.Mod =(1+M cos ω.sub.M t) cos ω.sub.C t   (4),
where M is the modulating index, which is less than or equal to 1, ωM =2πfm =2π/λM, and ωC =2πfC =2π/λC. IMod may be rewritten as in equation (5), below:
I.sub.Mod =cos ω.sub.C t+m/2 (cos (ω.sub.C +ω.sub.M)t+cos (ω.sub.C -ω.sub.M)t)                          (5).
Equation (5) illustrates that the modulated carrier has power at frequencies ωC, ωCM, and ωC-ωM. In amplitude modulation, the frequency of the information signal remains constant while the amplitude varies to convey information. In frequency modulation, the frequency of the modulated signal varies, depending on the frequency of the information signal.
Where the information (modulating) signal is a complex waveform f(t), the amplitude modulated waveform may be (K+f(t)) * cos ωC t, where K is a constant that is large enough such that K+f(t)) is never negative.
In many circumstances, the modulated signal IMod can be transmitted more easily and efficiently than can the information signal cos ωM t. At the conclusion of the transmission, a receiver strips the carrier wave, leaving only the information wave.
Systems are known in the art to modulate and demodulate light signals for information transmission purposes. However, such state-of-the-art systems are complex, expensive and require relatively sophisticated electronic processing to provide a modulated light output signal and to retrieve an electronic signal at the receiving end of the transmission.
SUMMARY OF THE INVENTION
The invention relates to a light communication system for transmitting modulated information. The system may include a source of a first laser light signal containing information and a source of a second laser light signal suitable for use in modulation with the first laser light signal. The first and second laser light signals may be mixed in a local mixer so as to create a multi-component local mixed laser light signal. A receiver element, such as an optical fibre pickup, may be sized and positioned to receive only one of the light signal components emanating from the mixer, such as the frequency summation component. The mixer may include a screen or mask with laterally-spaced or offset pinholes or slits through which the first and second light signals are respectively passed and a cavity in which the passed first and second light signals are mixed through overlapping, similar to the creation of an interference pattern.
The signal component received by the receiver element may be further transmitted through a light transmission link, such as a fibre optic cable, to a remote location. The transmission link may include one or more amplifiers as known in the art, particularly if the signal component is to be transmitted over substantial distances.
The invention may further include a demodulating system for the transmitted signal component that includes a source of a third laser light signal and a remote light mixer at the receiving end of the light transmission link. The third laser light signal and the signal component transmitted through the light transmission link are mixed in a remote light mixer including a screen or mask with pinholes through which the third laser light signal and transmitted signal component pass into a mixing cavity, as previously described, to create a remote mixed signal with a plurality of components.
The demodulating system may also include a light sensitive detector plate that detects the remote mixed signal components and converts them to the electronic domain. A remote detector responsive to a component of the remote mixed signal from the detector plate then produces an electronic output signal corresponding to the information content of the first laser light signal.
The invention is not limited to transmitting and detecting the frequency summation component of the mixed first and second signals. If a different component is transmitted and detected (such as the frequency difference component), a similar procedure may be performed by the remote detector to recover the information of the first laser light signal.
The local receiver, while preferably a pickup fibre, may include another frequency-selective electromagnetic receptor as known in the art.
The present invention may be characterized by its simplicity and robust construction, as well as its ability to employ relatively inexpensive, off-the-shelf, low-frequency electronic switching components and commercially available lasers.
BRIEF DESCRIPTION OF THE DRAWINGS
While the specification concludes with claims particularly pointing out and distinctly claiming that which is regarded as the present invention, the advantages of this invention can be more readily ascertained from the following description of the invention when read in conjunction with the accompanying drawings in which:
FIG. 1 shows a perspective view of a section of fibre optic cable;
FIG. 2A illustrates refraction in the case in which the refractive index of the base medium is less than that of the adjacent medium;
FIG. 2B illustrates refraction in the case in which the refractive index of the base medium is greater than that of the adjacent medium;
FIG. 3 illustrates total internal reflection in a fibre optic cable;
FIG. 4 is a schematic representation of a light modulator system according to a preferred embodiment of the present invention; and
FIG. 5 is a schematic representation of a light demodulator system according to a preferred embodiment of the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
Referring to FIG. 4, acommunication system 20 according to the invention includes a laserlight modulator system 22, which provides a modulated laser light signal to a fibreoptic transmission cable 10.Communication system 20 also includes a laserlight demodulator system 24 shown in FIG. 5.Cable 10 is part of a fibre optic transmission link betweenlight modulator system 22 andlight demodulator system 24.Cable 10 includes alocal end 10A (shown in FIG. 4) and aremote end 10B (shown in FIG. 5), as well as an intermediate portion linking ends 10A and 10B (not shown).
Returning to FIG. 4,laser 26 provides a light signal EC having a frequency fC to anoptic fibre 28, the frequency subscript C referring to "carrier."Laser 26 may be a commercially-available diode laser, and frequency fC is tunable within a range of frequencies. The laser carrier signal may be called a light signal, an optic signal, or merely light.Laser 26 may be termed the carrier wave laser. The signals produced by lasers are coherent. Coherence has various aspects, but includes having virtually all energy of the output signal at a single frequency or within an extremely narrow band of frequencies. Coherence permits maintenance of the information and carrier wave light or grids employed in the invention within tight frequency bounds for modulation and demodulation.
Aninformation signal source 34 provides a laser light signal EI having a frequency fI to anoptic fibre 38, where the frequency subscript I refers to "information."Information signal source 34 comprises a means for converting a relatively low frequency electronic domain signal received fromcontrol system 40 to a light signal transmissible throughoptic fibre 38, as known in the art. For example, an electrooptic or magnetooptic modulator may serve as the electronic-to-light signal conversion means. Accordingly, signal EI is also referred to as a light signal. Thus, in accordance with the invention, EI is representative of signals and frequencies which will not transmit through an optic fibre but which, when modulating light signal EC, can, in fact, be so transmitted.
Merely by way of example and not limitation, the signals EC and EI are defined in equations (6) and (7), below:
E.sub.C =A cos ω.sub.C t                             (6),
where ωC =2π*fC, and A is the amplitude. For convenience A equals 1 and will be ignored.
E.sub.I =M cos ω.sub.I t                             (7),
where ωI =2π*fI, and M is a modulation index that is less than or equal to 1.
The maximum magnitude of M may be considerably greater than the magnitude of A. In the case of amplitude modulation, the value of M varies to convey information. In the case of frequency modulation, M=1 and the frequency fI varies to convey information. In either case, the frequency fI is substantially lower than frequency fC. In this context, "substantially" means within a range between a maximum and minimum spread of frequencies fC and fI. The maximum spread in frequency modulation (audio) transmission is presently about 4400 to 1. The minimum spread is determined by the sensitivity of the receiver. The maximum spread is limited by the transmission spectrum of the optical fibre. Additionally, different frequencies travel at different velocities in the fibre, with the result that too great a spread between fC and fI will cause shifting of the information, commonly known as "smearing." With a standard ≈200 THz signal, an amplitude modulation at a minimum of 26.5 to 1 cycles of carrier to information signal provides a baud rate of over 7 THz. While such a baud rate is obviously unnecessary for most applications, it would be possible to realize such a rate using microwave carrier to signal ratios. (For example, the ratio of an AM band carrier signal of 720 kHz versus an information signal of 20 kHz.) The frequency fC should be high enough for the resulting modulated signal to be transmitted byfibre optic cable 10.
Information signal source 34 may be a laser or other source of coherent light. The amplitude (preferable) or frequency of signal EI is dictated by acontrol system 40, which may be one of various suitable sending instrumentation systems or a computer. For example,control system 40 may comprise an electronic signal-generating apparatus, such as a telecommunications system or a computer, which generates an information signal (audio, video, facsimile, electronic data, etc.) in or convertible to the digital domain for convenience of transmission.
Lasers are preferred for use as the light sources in the present invention as being suitable for use with relatively low frequency electronic components. An oscillator could drive, or gate, an LED to create a controlled frequency of pulsing that could be modulated (amplitude) by an information beam. However, such an approach would require very high frequency (and thus costly) generation components, which is a drawback the present invention avoids.
Signals EC and EI are transmitted throughoptic fibres 28 and 38, respectively, tolight mixer cavity 44.Light mixer cavity 44 comprises a block of optically-transmissive material for the light frequencies passing therethrough, such as air, other gases or gas mixtures, as well as solid materials known in the art.Light mixer cavity 44 contains a screen ormask 48 opaque to the incoming light signal frequencies fromoptic fibres 28 and 38.Screen 48 is transversely oriented to the associated ends ofoptic fibres 28 and 38 and includes laterally-spaced or offset pinholes or slits 50 and 52 (such as are commonly used to create an interference pattern from a single source).Optic fibre 28 is pointed atpinhole 50;optic fibre 38 is pointed atpinhole 52. The widths ofpinholes 50 and 52 may be at some quantized level, which may be between a quarter of a wavelength and a wavelength of the signals EC and EI, respectively. The size ofpinholes 50 and 52 is greatly exaggerated for purposes of illustration.
After having passed throughpinholes 50 and 52, light signals EC and EI mix (i.e. overlap) as shown in FIG. 4. Under the definition of interference provided above, the overlapping of signals EC and EI is not strictly an interference as defined in the art because EC and EI do not start from the same point source or from two identical point sources. Therefore, the term "mixing" will be used herein to describe this phenomenon.
The modulation and demodulation functions employed in the invention are effected through the screen and pinhole system so that the two light signals transmitted through the pinholes create a non-linear function reflective of the information signal being transmitted.
Signals EC and EI inlight mixer cavity 44 contain four components: (1) EC alone, (2) EI alone, (3) a modulated sum EMS of EC and EI, and (4) a modulated difference EMD between EC and EI.
Apickup optic fibre 56 or other suitable light receptor is positioned in the path of the overlapping waves of signals EC and EI. Pickup fibre 56 is positioned distant enough fromscreen 48 for the two light signals to overlap and sized such that it picks up substantially only the modulated sum EMS component for transmission. The size ofpinholes 50 and 52 may be varied in coordination with placement ofpickup fibre 56 for optimum performance.
A pumpedcrystal amplifier 60 as known in the art receives that portion of signal EMS that is transmitted bypickup fibre 56. Pumpedcrystal amplifier 60 may be a passive crystal of off-the-shelf design that is commonly used in transatlantic cables for periodic signal amplification for long distance optic fibre. Additional pumped crystal amplifiers may be used as appropriate in the case of long distance optic fibre transmission. The intermediate portion of fibre optic transmission cable 10 (not shown), as well as the remote end of fibreoptic transmission cable 10B, are of the same size aslocal end 10A, so as to transmit only the modulated sum frequency to alight demodulator system 24 at the receiving end of the transmission.
Referring to FIG. 5, alight demodulator system 24 includes receiver fibreoptic transmission cable 10B (carrying EMS) and alaser 80.Laser 80 provides a laser light signal EOSC having a frequency fOSC to anoptic fibre 84, where the frequency subscript OSC refers for convenience by analogy to an oscillating signal at the demodulation end of the system. As withlaser 26,laser 80 may be an off-the-shelf, tunable diode laser. While it is preferred that fOSC may equal fC to reduce noise to the maximum extent, it is not required. If fOSC does not equal fC, more sophisticated processing capabilities may be required in the demodulator system processing electronics.
Signals EOSC and EMS are received by alight mixer cavity 90, which is similar tolight mixer cavity 44. Signal EMS may be amplified, as with a pumpedcrystal amplifier 88, before enteringlight mixer cavity 90.Light mixer cavity 90 also includes a screen ormask 96 withpinholes 98 and 100, corresponding to the construction ofmask 48.Optic fibre 84 is aimed atpinhole 98;optic fibre 10B atpinhole 100. Signals EOSC and EMS, passing through their respective pinholes and subsequently overlapping, produce four signal components therefrom: (1) EOSC, (2) EMS (3) the modulated sum of E0SC and EMS, and (4) the difference between EOSC and EMS which, if EOSC is equal to EC, will equal EI. The four components are received by a lightsensitive detector plate 104 as known in the art, which receives all four signal components.
Lightsensitive detector plate 104 produces an electronic domain signal VLS, which is received byamplifier 110. As with the modulation end of the communication system of the invention, the size ofpinholes 98 and 100 and the placement ofdetector plate 104 may be varied for optimum performance. Adetector 114 is sensitive only to the difference frequency signal component received fromamplifier 110 and produces an electronic output signal, the amplitude of which varies, mimicking the original, relatively low-frequency, information signal fromcontrol system 40, allowing relatively low frequency electrical circuitry to amplify and reroute the signal locally to its intended destination for processing. Thus, the original information signal can readily be recovered from the signal received by the detector. The lower frequency electrical circuitry for handling the difference frequency is far less expensive than higher frequency circuitry required to handle a high frequency light signal such as a carrier wave light signal.
Exemplary applications forcommunication system 20 include local area networks, wide area networks, and local and long distance telecommunications.
Of course, in many, if not all, applications of the present invention, it is expected that a local light demodulator system would accompany the local light modulator system such that information could be transmitted in both directions. It is expected that, in most cases, a modulator/transmitter would also be a demodulator/receiver or a transceiver, with the functions oflasers 26 and 80 as illustrated and described herein performed by a single laser suitably linked by prism and optic fibres into both the modulation and demodulation portions of an integrated transceiver system.
Although only amplitude and frequency modulation are discussed above, it will be apparent to those skilled in the art that various other modulation techniques may be employed, such as phase modulation. This would, however, require one to send the carrier wave down the same optical fibre as the carrier wave impressed with the information signal, e.g., mixing would not be employed for the addition of a carrier wave signal. Phase detection could also be employed at the receiving end of the communication system.
It is expected that existing off-the-shelf parts are used in fabricating the apparatus of the invention wherever possible, there being no need for extensive use of custom-designed laser and optic transmission and amplification components.
As used in the claims, the terms "connect," "connectable," or "connected to" are not necessarily limited to a direct connection. For example, lightsensitive detector plate 104 is connected todetector 114, although it may not be directly connected, due to the presence of an intervening amplifier.
Having thus described in detail preferred embodiments of the present invention, it is to be understood that the invention defined by the appended claims is not to be limited by particular details set forth in the above description as many apparent variations thereof are possible without departing from the spirit or scope thereof.

Claims (43)

What is claimed is:
1. A light communication system for transmitting modulated information, comprising:
a source of a light signal containing information to be transmitted;
a source of a higher frequency carrier light signal suitable for use in modulation with the information light signal;
a light mixer to mix the information and carrier light signals to create a mixed light signal, wherein said light mixer utilizes a cavity to receive the information and carrier light signals; and
a receiver element to receive a component of the mixed light signal for transmission to a remote location via a light transmission link.
2. The system of claim 1 in which the mixed light signal includes a modulated sum component of the information and the carrier light signals, and the mixed light signal component received from the receiver element is the modulated sum component.
3. The system of claim 1 in which the light mixer includes a mask having a first pinhole through which the information light signal is aimed and a second pinhole through which the carrier light signal is aimed.
4. The system of claim 3 in which the information light signal and the carrier light signal are aimed in a mutually parallel and laterally offset relationship, and the mask is oriented transversely to the light signals.
5. The system of claim 1 in which the receiver element is a pickup optic fibre sized to transmit substantially only the mixed light signal component to the transmission link.
6. The system of claim 1, further including an amplifier for receiving the mixed light signal component from the receiver element and amplifying the mixed light signal component for transmission to said remote location via the light transmission link.
7. The system of claim 6, further including said light transmission link comprising a fibre optic cable in communication with the receiver element through the amplifier.
8. The system of claim 1 in which the light signal sources are lasers.
9. A light communication system for receiving modulated information in the form of a mixed light signal component carrying the information, comprising:
a source of a light signal;
a light mixer to mix the light signal and the received mixed light signal component to produce a mixed light signal, wherein said light mixer utilizes a cavity to receive the light signal and the received mixed light signal component; and
a detector responsive to a component of the mixed light signal for producing a signal representative of the information carried by the received mixed light signal component.
10. The system of claim 9 in which the detector is responsive to a difference component in the mixed light signal.
11. The system of claim 9 in which the light mixer includes a mask having a first pinhole through which the light signal is aimed and a second pinhole through which the received mixed light signal component is aimed.
12. The system of claim 11 in which the light signal and the received mixed light signal component are aimed in a mutually parallel and laterally offset relationship, and the mask is oriented transversely to the light signals.
13. The system of claim 9 further comprising a light sensitive detector plate that detects the mixed light signal and provides components of the mixed light signal to the detector.
14. A light communication system for transmitting and receiving modulated information, the system comprising:
a source of a light signal containing information to be transmitted;
a source of a second higher frequency carrier light signal suitable for use in modulation with the information light signal;
a transmitter light mixer for mixing the information and carrier light signals to create a mixed light signal including a summation frequency component of the information and carrier light signals;
a receiver element for receiving the summation frequency light signal component and passing the summation frequency light signal component to a light transmission link;
a light transmission link for transmitting the summation frequency light signal component to a remote location;
a source of a light signal of a different frequency than the summation frequency light signal component to a remote location;
a receiver light mixer at the remote location for mixing the different frequency light signal and the summation frequency light signal component to create a second mixed light signal; and
a detector at the remote location responsive to a difference component of the second mixed light signal for producing a signal representative of the information of the information light signal.
15. The system of claim 14 in which the transmitter light mixer includes a mask having a first pinhole through which the information light signal is aimed and a second pinhole through which the carrier light signal is aimed.
16. The system of claim 14 in which the receiver light mixer includes a mask having a first pinhole through which the different frequency light signal is aimed and a second pinhole through which the summation frequency light signal component is aimed.
17. The system of claim 14 in which the receiver element is a pickup optical fibre sized to transmit substantially only the summation frequency light signal component to the transmission link.
18. The system of claim 14 further comprising a light sensitive detector plate that detects the second mixed light signal and provides components of the second mixed light signal to the detector.
19. A light communication system for transmitting and receiving modulated information, the system comprising:
means for providing a first light signal containing information and a second light signal suitable for use in modulation with the first light signal;
local mixing means for mixing the first and second light signals to create a local mixed signal;
light transmission means for receiving a component of the local mixed light signal and for transmitting the component of the local mixed light signal to a remote location;
a source of a third light signal of a different frequency than the local mixed light signal component at the remote location;
remote mixing means for mixing the third, different frequency light signal and the local mixed light signal component received through the light transmission means to create a remote mixed light signal; and
remote detection means responsive to a component of the remote mixed light signal to thereby produce a signal representative of the information of the first light signal.
20. A light communication system for transmitting and receiving information contained in a first light signal which is modulated with a second light signal, the system comprising:
a local light mixer in which the first and second light signals are mixed to create a local mixed signal, the local light mixer comprising a light cavity to receive the first and second light signals for mixing;
a remote source of a third light signal;
a remote light mixer in which the third light signal and a signal component of the local mixed signal are mixed to produce a remote mixed signal; and
a remote detector responsive to the remote mixed signal to produce a signal representative of the information contained in the first light signal.
21. A light modulator for use in a light communication system used for transmitting information over a light transmission link, the system comprising:
a first light source providing a first light signal having a first frequency;
a second light source providing a second light signal of a second frequency which is substantially higher than the first frequency;
a light signal mixer for receiving the first and second light signals and in which the first and second light signals are mixed to produce a mixed light signal, the light signal mixer comprising a light cavity to receive the first and second light signals for mixing; and
a receiver element for receiving a component of the mixed light signal and providing it to the light transmission link for transmission.
22. A light demodulator for use in a light communication system used for transmitting information, the system comprising:
a first light source providing a first light signal having a first frequency;
a second light source comprising a transmission link through which is received a mixed light signal component of a light signal containing information and a second light signal of a second frequency which is substantially higher than the frequency of the information light signal, said received mixed light signal component having been mixed at a location remote from the light demodulator and transmitted to said demodulator through the transmission link;
a light signal mixer to receive the first light signal and the received mixed light signal component and in which the first light signal and mixed light signal component are mixed to produce a demodulation mixed light signal; and
a detector responsive to the demodulation mixed light signal to produce a signal representative of the information in the information light signal.
23. A method for modulating and demodulating light information, comprising:
providing a first light signal containing information;
providing a second light signal suitable for use in modulation with the first light signal;
mixing the first and second light signals to create a local mixed light signal including a plurality of components;
transmitting a component of the local mixed light signal over a light transmission link to a remote location;
providing a third light signal at the remote location;
mixing the third light signal and the local mixed light signal component at the remote location to produce a remote mixed light signal including a plurality of components; and
detecting a component of the remote mixed light signal to retrieve the information of the first light signal.
24. The method of claim 23, wherein said transmitted component comprises a local mixed signal summation component.
25. The method of claim 23, wherein said detected component comprises a remote mixed signal difference component.
26. A method of modulating information carried by light, comprising:
generating a first light signal of a first frequency, said first light signal carrying information;
generating a second light signal of a second, higher frequency than the first frequency;
mixing the first and second light signals upon substantially simultaneous arrival thereof to form a mixed light signal with a component characterized by both the first and second light signals; and
receiving substantially only the characterized mixed light signal component for transmission to a remote location.
27. The method of claim 26, wherein said characterized component comprises a summation component.
28. A method of demodulating information carried by light, comprising:
receiving a mixed light signal component from a light transmission link, wherein said received component is characterized by a first light signal at a first frequency, the first light signal carrying information, and by a second light signal of a second, higher frequency than the first frequency;
generating a third light signal of a frequency different from that of the received mixed light signal component;
mixing the received mixed light signal component with the third light signal to form a demodulation mixed light signal with a component characterized by both the received mixed light signal component and the third light signal;
detecting the demodulation mixed light signal component; and
retrieving therefrom the information carried by the first light signal.
29. The method of claim 28, wherein the detected demodulation mixed light signal component comprises a difference component.
30. A light communication system for transmitting modulated information, comprising:
a source of a light signal containing information to be transmitted;
a source of a higher frequency carrier light signal suitable for use in modulation with the information light signal;
a light mixer for mixing the information and carrier light signals to create a mixed light signal, said light mixer comprising a mask having a first pinhole through which the information light signal is aimed and a second pinhole through which the carrier light signal is aimed prior to mixing; and
a receiver element for receiving a component of the mixed light signal for transmission to a remote location via a light transmission link.
31. The system of claim 30 in which the mixed signal includes a modulated sum component of the information and the carrier light signals, and the mixed light signal component received by the receiver element is the modulated sum component.
32. The system of claim 30 in which the information light signal and the carrier light signal are aimed in a mutually parallel and laterally offset relationship, and the mask is oriented transversely to the light signals.
33. The system of claim 30 in which the receiver element is a pickup optic fibre sized to transmit substantially only the mixed light signal component to the transmission link.
34. The system of claim 30, further including an amplifier for receiving the mixed light signal component from the receiver element and amplifying the mixed light signal component for transmission to said remote location via the light transmission link.
35. The system of claim 34, further including said light transmission link comprising a fibre optic cable in communication with the receiver element through the amplifier.
36. The system of claim 30 in which the light signal sources are lasers.
37. A light communication system for receiving modulated information the the form of a mixed light signal component carrying the information, comprising:
a source of a light signal;
a light mixer for mixing the light signal and the received mixed light signal component to produce a mixed light signal, said light mixer comprising a mask having a first pinhole through which the light signal is aimed and a second pinhole through which the received mixed light signal component is aimed; and
a detector responsive to a component of the mixed light signal for producing a signal representative of the information carried by the received mixed light signal component.
38. The system of claim 37 in which the detector is responsive to a difference component in the mixed light signal.
39. The system of claim 37 in which the light signal and the received mixed light signal component are aimed in mutually parallel and laterally offset relationship, and the mask is oriented transversely to the light signals.
40. A light communication system for receiving modulated information in the form of a mixed light signal component carrying the information, comprising:
a source of a light signal;
a light mixer for mixing the light signal and the received mixed light signal component to produce a mixed light signal;
a detector responsive to a component of the mixed light signal for producing a signal representative of the information carried by the received mixed light signal component; and
a light sensitive detector plate to detect the mixed light signal and provide components of the mixed light signal to the detector.
41. The system of claim 40 in which the detector is responsive to a difference component in the mixed light signal.
42. The system of claim 40 in which the light mixer includes a mask having a first pinhole through which the light signal is aimed and a second pinhole through which the received mixed light signal component is aimed.
43. The system of claim 42 in which the light signal and the received mixed light signal component are aimed in a mutually parallel and laterally offset relationship, and the mask is oriented transversely to the light signals.
US08/580,6301995-12-291995-12-29Modulation and demodulation of light to facilitate transmission of informationExpired - LifetimeUS5847853A (en)

Priority Applications (2)

Application NumberPriority DateFiling DateTitle
US08/580,630US5847853A (en)1995-12-291995-12-29Modulation and demodulation of light to facilitate transmission of information
US09/107,668US6304355B1 (en)1995-12-291998-06-30Modulation and demodulation of light to facilitate transmission of information

Applications Claiming Priority (1)

Application NumberPriority DateFiling DateTitle
US08/580,630US5847853A (en)1995-12-291995-12-29Modulation and demodulation of light to facilitate transmission of information

Related Child Applications (1)

Application NumberTitlePriority DateFiling Date
US09/107,668ContinuationUS6304355B1 (en)1995-12-291998-06-30Modulation and demodulation of light to facilitate transmission of information

Publications (1)

Publication NumberPublication Date
US5847853Atrue US5847853A (en)1998-12-08

Family

ID=24321871

Family Applications (2)

Application NumberTitlePriority DateFiling Date
US08/580,630Expired - LifetimeUS5847853A (en)1995-12-291995-12-29Modulation and demodulation of light to facilitate transmission of information
US09/107,668Expired - Fee RelatedUS6304355B1 (en)1995-12-291998-06-30Modulation and demodulation of light to facilitate transmission of information

Family Applications After (1)

Application NumberTitlePriority DateFiling Date
US09/107,668Expired - Fee RelatedUS6304355B1 (en)1995-12-291998-06-30Modulation and demodulation of light to facilitate transmission of information

Country Status (1)

CountryLink
US (2)US5847853A (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US6304355B1 (en)*1995-12-292001-10-16Warren M. FarnworthModulation and demodulation of light to facilitate transmission of information
US20100067918A1 (en)*2008-04-182010-03-18New Jersey Institute Of TechnologyUltra-miniaturized thz communication device and system
US20110110674A1 (en)*2008-04-152011-05-12Deutsche Telekom AgMethod and device for processing terahertz waves
US11251783B1 (en)2020-12-152022-02-15Raytheon CompanyDemodulation methods and devices for frequency-modulated (FM) signals

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
JP3832089B2 (en)*1997-05-262006-10-11セイコーエプソン株式会社 Digital camera and printing system
US8797644B2 (en)*2006-08-112014-08-05The Regents Of The University Of CaliforniaCapillary-based cell and tissue acquisition system (CTAS)
DE102012007561B4 (en)*2012-04-142014-07-10Dräger Safety AG & Co. KGaA Gas detection system

Citations (19)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4135202A (en)*1973-12-031979-01-16Communications Patents LimitedBroadcasting systems with fibre optic transmission lines
US4560246A (en)*1982-06-041985-12-24British TelecommunicationsOptical transmission
US4561117A (en)*1981-07-291985-12-24Optical Communications CorporationFiber optic digital data transmitting system
US4602223A (en)*1984-12-051986-07-22Itt CorporationHigh rate modulator/demodulator for digital signals amplitude modulated on digital data
US4680767A (en)*1985-07-011987-07-14Polaroid CorporationOptical fiber laser
US4768191A (en)*1986-10-011988-08-30Itt Corporation, Defense Communications DivisionDigital data and orderwire combiner apparatus
US4775972A (en)*1985-05-101988-10-04Itt Corporation, Defense Communications DivisionOptical fiber communication for local area networks with frequency-division-multiplexing
US4827395A (en)*1983-04-211989-05-02Intelli-Tech CorporationManufacturing monitoring and control systems
US4831662A (en)*1981-07-291989-05-16Optical Communications Corp.Fiber optic data transmitting system
US4913547A (en)*1988-01-291990-04-03Moran Steven EOptically phased-locked speckle pattern interferometer
US5121241A (en)*1988-08-111992-06-09Alcatel N.V.Transceiver for a bidirectional coherent optical transmission system
US5251053A (en)*1990-06-151993-10-05Alcatel N.V.Radio communication system
US5285306A (en)*1990-11-151994-02-08Alcatel N.V.Optical communication system with a fiber optic amplifier
US5339183A (en)*1992-03-191994-08-16Fujitsu LimitedOptical signal transmission device
US5371622A (en)*1991-07-151994-12-06U.S. Philips CorporationCoherent optical telecommunication network wherein each send/receive terminal can simultaneously communicate with more than one other send/receive terminal
US5446574A (en)*1993-03-261995-08-29Telefonaktiebolaget Lm EricssonSystem and method for dispersion compensation in fibre optic high speed systems
US5455704A (en)*1991-11-081995-10-03Mitsubishi Denki Kabushiki KaishaOptical-fiber light amplifier
US5596667A (en)*1992-10-201997-01-21Fujitsu LimitedApplication of phase conjugate optics to optical systems
US5644664A (en)*1994-06-101997-07-01The United States Of America As Represented By The Secretary Of The NavyFiber optic digital transmission system

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3695766A (en)*1970-01-141972-10-03Us ArmyPhotosensitive surface shaping for optical heterodyning
JPH0675144B2 (en)*1989-01-121994-09-21松下電器産業株式会社 Optical modulation wave demodulator
EP0772314A3 (en)*1990-09-141997-09-03Fujitsu Ltd Optical communication system with sub-carrier multiplexing
US5655832A (en)*1992-04-161997-08-12Tir Technologies, Inc.Multiple wavelength light processor
US5535051A (en)*1995-01-241996-07-09At&T Corp.WDM optical fiber system using crystal optical amplifier
US5592321A (en)*1995-04-131997-01-07Elbex Video, Ltd.Apparatus for selective routing of information signals
US5796506A (en)*1995-11-211998-08-18Tsai; Charles Su-ChangSubmillimeter indirect heterodyne receiver and mixer element
US5847853A (en)*1995-12-291998-12-08Micron Technology, Inc.Modulation and demodulation of light to facilitate transmission of information

Patent Citations (20)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4135202A (en)*1973-12-031979-01-16Communications Patents LimitedBroadcasting systems with fibre optic transmission lines
US4561117A (en)*1981-07-291985-12-24Optical Communications CorporationFiber optic digital data transmitting system
US4831662A (en)*1981-07-291989-05-16Optical Communications Corp.Fiber optic data transmitting system
US4560246B1 (en)*1982-06-041998-06-09British TelecommOptical transmission
US4560246A (en)*1982-06-041985-12-24British TelecommunicationsOptical transmission
US4827395A (en)*1983-04-211989-05-02Intelli-Tech CorporationManufacturing monitoring and control systems
US4602223A (en)*1984-12-051986-07-22Itt CorporationHigh rate modulator/demodulator for digital signals amplitude modulated on digital data
US4775972A (en)*1985-05-101988-10-04Itt Corporation, Defense Communications DivisionOptical fiber communication for local area networks with frequency-division-multiplexing
US4680767A (en)*1985-07-011987-07-14Polaroid CorporationOptical fiber laser
US4768191A (en)*1986-10-011988-08-30Itt Corporation, Defense Communications DivisionDigital data and orderwire combiner apparatus
US4913547A (en)*1988-01-291990-04-03Moran Steven EOptically phased-locked speckle pattern interferometer
US5121241A (en)*1988-08-111992-06-09Alcatel N.V.Transceiver for a bidirectional coherent optical transmission system
US5251053A (en)*1990-06-151993-10-05Alcatel N.V.Radio communication system
US5285306A (en)*1990-11-151994-02-08Alcatel N.V.Optical communication system with a fiber optic amplifier
US5371622A (en)*1991-07-151994-12-06U.S. Philips CorporationCoherent optical telecommunication network wherein each send/receive terminal can simultaneously communicate with more than one other send/receive terminal
US5455704A (en)*1991-11-081995-10-03Mitsubishi Denki Kabushiki KaishaOptical-fiber light amplifier
US5339183A (en)*1992-03-191994-08-16Fujitsu LimitedOptical signal transmission device
US5596667A (en)*1992-10-201997-01-21Fujitsu LimitedApplication of phase conjugate optics to optical systems
US5446574A (en)*1993-03-261995-08-29Telefonaktiebolaget Lm EricssonSystem and method for dispersion compensation in fibre optic high speed systems
US5644664A (en)*1994-06-101997-07-01The United States Of America As Represented By The Secretary Of The NavyFiber optic digital transmission system

Non-Patent Citations (10)

* Cited by examiner, † Cited by third party
Title
"Optoelectronic Interconnections", Microelectronics Packaging Handbook, pp. 437-441, 1989.
"Radiofrequency Communications: AM", Chapter 13, pp. 892-895, The Art of Electronics.
Gilmore, Mike, Fibre Optic Cabling Theory, design and installation practice , pp. 11 27, 1991.*
Gilmore, Mike, Fibre Optic Cabling Theory, design and installation practice, pp. 11-27, 1991.
Mathieu, J.P., "Interference", Optics Parts 1 and 2, pp. 18-21, 1975.
Mathieu, J.P., Interference , Optics Parts 1 and 2 , pp. 18 21, 1975.*
Optoelectronic Interconnections , Microelectronics Packaging Handbook , pp. 437 441, 1989.*
Radiofrequency Communications: AM , Chapter 13, pp. 892 895, The Art of Electronics .*
Shimada, Sadakuni, "Introduction to coherent lightwave communications", Coherent Lightwave Communications Technology, pp. 1-3, 1995.
Shimada, Sadakuni, Introduction to coherent lightwave communications , Coherent Lightwave Communications Technology , pp. 1 3, 1995.*

Cited By (5)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US6304355B1 (en)*1995-12-292001-10-16Warren M. FarnworthModulation and demodulation of light to facilitate transmission of information
US20110110674A1 (en)*2008-04-152011-05-12Deutsche Telekom AgMethod and device for processing terahertz waves
US8693896B2 (en)*2008-04-152014-04-08Deutsche Telekom AgMethod and device for processing terahertz waves
US20100067918A1 (en)*2008-04-182010-03-18New Jersey Institute Of TechnologyUltra-miniaturized thz communication device and system
US11251783B1 (en)2020-12-152022-02-15Raytheon CompanyDemodulation methods and devices for frequency-modulated (FM) signals

Also Published As

Publication numberPublication date
US6304355B1 (en)2001-10-16

Similar Documents

PublicationPublication DateTitle
KR102292279B1 (en) Balanced optical receiver and method for detecting free space optical communication signal
US3573463A (en)Laser heterodyne transceiver communication system with afc
US4302835A (en)Multiple terminal passive multiplexing apparatus
EP0466182B1 (en)Optical communication apparatus using intensity modulation
US4319186A (en)Signal sensors
CA1283694C (en)Reducing fluctuations in a radiation beam characteristic
AU618388B2 (en)Optical transceiver
US4748686A (en)Coherence multiplexed optical position transducer
JPS63500069A (en) Digital information transmission method and device
US5295013A (en)Optical receiver of direct detection type
US4310905A (en)Acoustical modulator for fiber optic transmission
JPS5882396A (en) optical transmission system
CN112291019A (en)Underwater wireless optical communication method and system
JPH02504430A (en) radar test set
US5847853A (en)Modulation and demodulation of light to facilitate transmission of information
CN105162522A (en)Local phase-locked orthogonal polarization free space coherent optical communication device
US5517303A (en)Coherence selective sensor system
US7176447B2 (en)Electro-optic delay line frequency discriminator
US4234971A (en)Precise RF timing signal distribution to remote stations
IE61991B1 (en)Method for optical communication of information
US5274488A (en)Secure communications system
GB2237469A (en)Optical transmission process and system
Huang et al.Simple photonics-based angle of arrival and Doppler frequency shift measurement system for long baseline antennas
JP2768787B2 (en) Optical communication method
Kingsley et al.Use of optical fibers as instrumentation transducers

Legal Events

DateCodeTitleDescription
FEPPFee payment procedure

Free format text:PAYOR NUMBER ASSIGNED (ORIGINAL EVENT CODE: ASPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

STCFInformation on status: patent grant

Free format text:PATENTED CASE

FEPPFee payment procedure

Free format text:PAYER NUMBER DE-ASSIGNED (ORIGINAL EVENT CODE: RMPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

Free format text:PAYOR NUMBER ASSIGNED (ORIGINAL EVENT CODE: ASPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

FPAYFee payment

Year of fee payment:4

CCCertificate of correction
FPAYFee payment

Year of fee payment:8

FPAYFee payment

Year of fee payment:12


[8]ページ先頭

©2009-2025 Movatter.jp